Artificial intelligence quantifying endoscopic severity of ulcerative colitis in gradation scale

被引:3
|
作者
Takabayashi, Kaoru [1 ]
Kobayashi, Taku [2 ]
Matsuoka, Katsuyoshi [5 ]
Levesque, Barrett G. [8 ]
Kawamura, Takuji [6 ]
Tanaka, Kiyohito [6 ]
Kadota, Takeaki [7 ]
Bise, Ryoma [4 ,7 ]
Uchida, Seiichi [3 ,4 ,7 ]
Kanai, Takanori [2 ]
Ogata, Haruhiko [1 ]
机构
[1] Keio Univ, Ctr Diagnost & Therapeut Endoscopy, Sch Med, 35 Shinanomachi,Shinjuku Ku, Tokyo 1608582, Japan
[2] Keio Univ, Dept Internal Med, Div Gastroenterol & Hepatol, Sch Med, Tokyo, Japan
[3] Kitasato Univ Kitasato Inst Hosp, Ctr Adv IBD Res & Treatment, Tokyo, Japan
[4] Natl Inst Informat, Res Ctr Med Bigdata, Tokyo, Japan
[5] Toho Univ, Dept Internal Med, Div Gastroenterol & Hepatol, Sakura Med Ctr, Chiba, Japan
[6] Kyoto Second Red Cross Hosp, Dept Gastroenterol, Kyoto, Japan
[7] Kyushu Univ, Dept Adv Informat Technol, Fukuoka, Japan
[8] Los Angeles Cty Univ Southern Calif, Div Gastroenterol, Med Ctr, Los Angeles, CA USA
关键词
artificial intelligence; convolutional neural network; ranking; ulcerative colitis; VALIDATION; OUTCOMES; DISEASE; INDEX;
D O I
10.1111/den.14677
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Objectives: Existing endoscopic scores for ulcerative colitis (UC) objectively categorize disease severity based on the presence or absence of endoscopic findings; therefore, it may not reflect the range of clinical severity within each category. However, inflammatory bowel disease (IBD) expert endoscopists categorize the severity and diagnose the overall impression of the degree of inflammation. This study aimed to develop an artificial intelligence (AI) system that can accurately represent the assessment of the endoscopic severity of UC by IBD expert endoscopists.Methods: A ranking-convolutional neural network (ranking-CNN) was trained using comparative information on the UC severity of 13,826 pairs of endoscopic images created by IBD expert endoscopists. Using the trained ranking-CNN, the UC Endoscopic Gradation Scale (UCEGS) was used to express severity. Correlation coefficients were calculated to ensure that there were no inconsistencies in assessments of severity made using UCEGS diagnosed by the AI and the Mayo Endoscopic Subscore, and the correlation coefficients of the mean for test images assessed using UCEGS by four IBD expert endoscopists and the AI.Results: Spearman's correlation coefficient between the UCEGS diagnosed by AI and Mayo Endoscopic Subscore was approximately 0.89. The correlation coefficients between IBD expert endoscopists and the AI of the evaluation results were all higher than 0.95 (P < 0.01).Conclusions: The AI developed here can diagnose UC severity endoscopically similar to IBD expert endoscopists.
引用
收藏
页码:582 / 590
页数:9
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